A 1024-Channel CMOS Microelectrode Array With 26,400 Electrodes for Recording and Stimulation of Electrogenic Cells In Vitro

被引:168
作者
Ballini, Marco [2 ]
Mueller, Jan [1 ]
Livi, Paolo [1 ]
Chen, Yihui [1 ]
Frey, Urs [2 ]
Stettler, Alexander [1 ]
Shadmani, Amir [1 ]
Viswam, Vijay [1 ]
Jones, Ian Lloyd [1 ]
Jaeckel, David [1 ]
Radivojevic, Milos [1 ]
Lewandowska, Marta K. [1 ]
Gong, Wei [1 ]
Fiscella, Michele [1 ]
Bakkum, Douglas J. [1 ]
Heer, Flavio [2 ]
Hierlemann, Andreas [1 ]
机构
[1] Swiss Fed Inst Technol, Dept Biosyst Sci & Engn D BSSE, CH-4058 Basel, Switzerland
[2] Swiss Fed Inst Technol, D BSSE, CH-4058 Basel, Switzerland
基金
瑞士国家科学基金会;
关键词
Extracellular recording and stimulation; high channel count; low noise; low power; microelectrode array (MEA); multirate switched capacitor filter; neural interface; offset compensation; single-slope ADC; switch matrix; INTERFACE; SYSTEM; NOISE; AMPLIFIER; CULTURES;
D O I
10.1109/JSSC.2014.2359219
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
To advance our understanding of the functioning of neuronal ensembles, systems are needed to enable simultaneous recording from a large number of individual neurons at high spatiotemporal resolution and good signal-to-noise ratio. Moreover, stimulation capability is highly desirable for investigating, for example, plasticity and learning processes. Here, we present a microelectrode array (MEA) system on a single CMOS die for in vitro recording and stimulation. The system incorporates 26,400 platinum electrodes, fabricated by in-house post-processing, over a large sensing area (3.85 x 2.10 mm(2)) with sub-cellular spatial resolution (pitch of 17.5 mu m). Owing to an area and power efficient implementation, we were able to integrate 1024 readout channels on chip to record extracellular signals from a user-specified selection of electrodes. These channels feature noise values of 2.4 mu V-rms in the action-potential band (300 Hz-10 kHz) and 5.4 mu V-rms in the local-field-potential band (1 Hz-300 Hz), and provide programmable gain (up to 78 dB) to accommodate various biological preparations. Amplified and filtered signals are digitized by 10 bit parallel single-slope ADCs at 20 kSamples/s. The system also includes 32 stimulation units, which can elicit neural spikes through either current or voltage pulses. The chip consumes only 75 mW in total, which obviates the need of active cooling even for sensitive cell cultures.
引用
收藏
页码:2705 / 2719
页数:15
相关论文
共 40 条
[21]   Growing Cells Atop Microelectronic Chips: Interfacing Electrogenic Cells In Vitro With CMOS-Based Microelectrode Arrays [J].
Hierlemann, Andreas ;
Frey, Urs ;
Hafizovic, Sadik ;
Heer, Flavio .
PROCEEDINGS OF THE IEEE, 2011, 99 (02) :252-284
[22]   Electrical interactions via the extracellular potential near cell bodies [J].
Holt, GR ;
Koch, C .
JOURNAL OF COMPUTATIONAL NEUROSCIENCE, 1999, 6 (02) :169-184
[23]   Large-scale, high-resolution data acquisition system for extracellular recording of electrophysiological activity [J].
Imfeld, Kilian ;
Neukom, Simon ;
Maccione, Alessandro ;
Bornat, Yannick ;
Martinoia, Sergio ;
Farine, Pierre-Andre ;
Koudelka-Hep, Milerla ;
Berdondini, Luca .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2008, 55 (08) :2064-2073
[24]   Applicability of independent component analysis on high-density microelectrode array recordings [J].
Jaeckel, David ;
Frey, Urs ;
Fiscella, Michele ;
Franke, Felix ;
Hierlemann, Andreas .
JOURNAL OF NEUROPHYSIOLOGY, 2012, 108 (01) :334-348
[25]   The organization of two new cortical interneuronal circuits [J].
Jiang, Xiaolong ;
Wang, Guangfu ;
Lee, Alice J. ;
Stornetta, Ruth L. ;
Zhu, J. Julius .
NATURE NEUROSCIENCE, 2013, 16 (02) :210-218
[26]   Strengthening of synchronized activity by tetanic stimulation in cortical cultures: Application of planar electrode arrays [J].
Jimbo, Y ;
Robinson, HPC ;
Kawana, A .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1998, 45 (11) :1297-1304
[27]   Integrated circuit amplifiers for multi-electrode intracortical recording [J].
Jochum, Thomas ;
Denison, Timothy ;
Wolf, Patrick .
JOURNAL OF NEURAL ENGINEERING, 2009, 6 (01)
[28]  
Lewicki MS, 1998, NETWORK-COMP NEURAL, V9, pR53, DOI 10.1088/0954-898X/9/4/001
[29]   Compact Voltage and Current Stimulation Buffer for High-Density Microelectrode Arrays [J].
Livi, Paolo ;
Heer, Flavio ;
Frey, Urs ;
Bakkum, Douglas J. ;
Hierlemann, Andreas .
IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2010, 4 (06) :372-378
[30]   Physical principles for scalable neural recording [J].
Marblestone, Adam H. ;
Zamft, Bradley M. ;
Maguire, Yael G. ;
Shapiro, Mikhail G. ;
Cybulski, Thaddeus R. ;
Glaser, Joshua I. ;
Amodei, Dario ;
Stranges, P. Benjamin ;
Kalhor, Reza ;
Dalrymple, David A. ;
Seo, Dongjin ;
Alon, Elad ;
Maharbiz, Michel M. ;
Carmena, Jose M. ;
Rabaey, Jan M. ;
Boyden, Edward S. ;
Church, George M. ;
Kording, Konrad P. .
FRONTIERS IN COMPUTATIONAL NEUROSCIENCE, 2013, 7